cxgbit_target.c 40 KB

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  1. /*
  2. * Copyright (c) 2016 Chelsio Communications, Inc.
  3. *
  4. * This program is free software; you can redistribute it and/or modify
  5. * it under the terms of the GNU General Public License version 2 as
  6. * published by the Free Software Foundation.
  7. */
  8. #include <linux/workqueue.h>
  9. #include <linux/kthread.h>
  10. #include <linux/sched/signal.h>
  11. #include <asm/unaligned.h>
  12. #include <net/tcp.h>
  13. #include <target/target_core_base.h>
  14. #include <target/target_core_fabric.h>
  15. #include "cxgbit.h"
  16. struct sge_opaque_hdr {
  17. void *dev;
  18. dma_addr_t addr[MAX_SKB_FRAGS + 1];
  19. };
  20. static const u8 cxgbit_digest_len[] = {0, 4, 4, 8};
  21. #define TX_HDR_LEN (sizeof(struct sge_opaque_hdr) + \
  22. sizeof(struct fw_ofld_tx_data_wr))
  23. static struct sk_buff *
  24. __cxgbit_alloc_skb(struct cxgbit_sock *csk, u32 len, bool iso)
  25. {
  26. struct sk_buff *skb = NULL;
  27. u8 submode = 0;
  28. int errcode;
  29. static const u32 hdr_len = TX_HDR_LEN + ISCSI_HDR_LEN;
  30. if (len) {
  31. skb = alloc_skb_with_frags(hdr_len, len,
  32. 0, &errcode,
  33. GFP_KERNEL);
  34. if (!skb)
  35. return NULL;
  36. skb_reserve(skb, TX_HDR_LEN);
  37. skb_reset_transport_header(skb);
  38. __skb_put(skb, ISCSI_HDR_LEN);
  39. skb->data_len = len;
  40. skb->len += len;
  41. submode |= (csk->submode & CXGBIT_SUBMODE_DCRC);
  42. } else {
  43. u32 iso_len = iso ? sizeof(struct cpl_tx_data_iso) : 0;
  44. skb = alloc_skb(hdr_len + iso_len, GFP_KERNEL);
  45. if (!skb)
  46. return NULL;
  47. skb_reserve(skb, TX_HDR_LEN + iso_len);
  48. skb_reset_transport_header(skb);
  49. __skb_put(skb, ISCSI_HDR_LEN);
  50. }
  51. submode |= (csk->submode & CXGBIT_SUBMODE_HCRC);
  52. cxgbit_skcb_submode(skb) = submode;
  53. cxgbit_skcb_tx_extralen(skb) = cxgbit_digest_len[submode];
  54. cxgbit_skcb_flags(skb) |= SKCBF_TX_NEED_HDR;
  55. return skb;
  56. }
  57. static struct sk_buff *cxgbit_alloc_skb(struct cxgbit_sock *csk, u32 len)
  58. {
  59. return __cxgbit_alloc_skb(csk, len, false);
  60. }
  61. /*
  62. * cxgbit_is_ofld_imm - check whether a packet can be sent as immediate data
  63. * @skb: the packet
  64. *
  65. * Returns true if a packet can be sent as an offload WR with immediate
  66. * data. We currently use the same limit as for Ethernet packets.
  67. */
  68. static int cxgbit_is_ofld_imm(const struct sk_buff *skb)
  69. {
  70. int length = skb->len;
  71. if (likely(cxgbit_skcb_flags(skb) & SKCBF_TX_NEED_HDR))
  72. length += sizeof(struct fw_ofld_tx_data_wr);
  73. if (likely(cxgbit_skcb_flags(skb) & SKCBF_TX_ISO))
  74. length += sizeof(struct cpl_tx_data_iso);
  75. return length <= MAX_IMM_OFLD_TX_DATA_WR_LEN;
  76. }
  77. /*
  78. * cxgbit_sgl_len - calculates the size of an SGL of the given capacity
  79. * @n: the number of SGL entries
  80. * Calculates the number of flits needed for a scatter/gather list that
  81. * can hold the given number of entries.
  82. */
  83. static inline unsigned int cxgbit_sgl_len(unsigned int n)
  84. {
  85. n--;
  86. return (3 * n) / 2 + (n & 1) + 2;
  87. }
  88. /*
  89. * cxgbit_calc_tx_flits_ofld - calculate # of flits for an offload packet
  90. * @skb: the packet
  91. *
  92. * Returns the number of flits needed for the given offload packet.
  93. * These packets are already fully constructed and no additional headers
  94. * will be added.
  95. */
  96. static unsigned int cxgbit_calc_tx_flits_ofld(const struct sk_buff *skb)
  97. {
  98. unsigned int flits, cnt;
  99. if (cxgbit_is_ofld_imm(skb))
  100. return DIV_ROUND_UP(skb->len, 8);
  101. flits = skb_transport_offset(skb) / 8;
  102. cnt = skb_shinfo(skb)->nr_frags;
  103. if (skb_tail_pointer(skb) != skb_transport_header(skb))
  104. cnt++;
  105. return flits + cxgbit_sgl_len(cnt);
  106. }
  107. #define CXGBIT_ISO_FSLICE 0x1
  108. #define CXGBIT_ISO_LSLICE 0x2
  109. static void
  110. cxgbit_cpl_tx_data_iso(struct sk_buff *skb, struct cxgbit_iso_info *iso_info)
  111. {
  112. struct cpl_tx_data_iso *cpl;
  113. unsigned int submode = cxgbit_skcb_submode(skb);
  114. unsigned int fslice = !!(iso_info->flags & CXGBIT_ISO_FSLICE);
  115. unsigned int lslice = !!(iso_info->flags & CXGBIT_ISO_LSLICE);
  116. cpl = __skb_push(skb, sizeof(*cpl));
  117. cpl->op_to_scsi = htonl(CPL_TX_DATA_ISO_OP_V(CPL_TX_DATA_ISO) |
  118. CPL_TX_DATA_ISO_FIRST_V(fslice) |
  119. CPL_TX_DATA_ISO_LAST_V(lslice) |
  120. CPL_TX_DATA_ISO_CPLHDRLEN_V(0) |
  121. CPL_TX_DATA_ISO_HDRCRC_V(submode & 1) |
  122. CPL_TX_DATA_ISO_PLDCRC_V(((submode >> 1) & 1)) |
  123. CPL_TX_DATA_ISO_IMMEDIATE_V(0) |
  124. CPL_TX_DATA_ISO_SCSI_V(2));
  125. cpl->ahs_len = 0;
  126. cpl->mpdu = htons(DIV_ROUND_UP(iso_info->mpdu, 4));
  127. cpl->burst_size = htonl(DIV_ROUND_UP(iso_info->burst_len, 4));
  128. cpl->len = htonl(iso_info->len);
  129. cpl->reserved2_seglen_offset = htonl(0);
  130. cpl->datasn_offset = htonl(0);
  131. cpl->buffer_offset = htonl(0);
  132. cpl->reserved3 = 0;
  133. __skb_pull(skb, sizeof(*cpl));
  134. }
  135. static void
  136. cxgbit_tx_data_wr(struct cxgbit_sock *csk, struct sk_buff *skb, u32 dlen,
  137. u32 len, u32 credits, u32 compl)
  138. {
  139. struct fw_ofld_tx_data_wr *req;
  140. const struct cxgb4_lld_info *lldi = &csk->com.cdev->lldi;
  141. u32 submode = cxgbit_skcb_submode(skb);
  142. u32 wr_ulp_mode = 0;
  143. u32 hdr_size = sizeof(*req);
  144. u32 opcode = FW_OFLD_TX_DATA_WR;
  145. u32 immlen = 0;
  146. u32 force = is_t5(lldi->adapter_type) ? TX_FORCE_V(!submode) :
  147. T6_TX_FORCE_F;
  148. if (cxgbit_skcb_flags(skb) & SKCBF_TX_ISO) {
  149. opcode = FW_ISCSI_TX_DATA_WR;
  150. immlen += sizeof(struct cpl_tx_data_iso);
  151. hdr_size += sizeof(struct cpl_tx_data_iso);
  152. submode |= 8;
  153. }
  154. if (cxgbit_is_ofld_imm(skb))
  155. immlen += dlen;
  156. req = __skb_push(skb, hdr_size);
  157. req->op_to_immdlen = cpu_to_be32(FW_WR_OP_V(opcode) |
  158. FW_WR_COMPL_V(compl) |
  159. FW_WR_IMMDLEN_V(immlen));
  160. req->flowid_len16 = cpu_to_be32(FW_WR_FLOWID_V(csk->tid) |
  161. FW_WR_LEN16_V(credits));
  162. req->plen = htonl(len);
  163. wr_ulp_mode = FW_OFLD_TX_DATA_WR_ULPMODE_V(ULP_MODE_ISCSI) |
  164. FW_OFLD_TX_DATA_WR_ULPSUBMODE_V(submode);
  165. req->tunnel_to_proxy = htonl((wr_ulp_mode) | force |
  166. FW_OFLD_TX_DATA_WR_SHOVE_V(skb_peek(&csk->txq) ? 0 : 1));
  167. }
  168. static void cxgbit_arp_failure_skb_discard(void *handle, struct sk_buff *skb)
  169. {
  170. kfree_skb(skb);
  171. }
  172. void cxgbit_push_tx_frames(struct cxgbit_sock *csk)
  173. {
  174. struct sk_buff *skb;
  175. while (csk->wr_cred && ((skb = skb_peek(&csk->txq)) != NULL)) {
  176. u32 dlen = skb->len;
  177. u32 len = skb->len;
  178. u32 credits_needed;
  179. u32 compl = 0;
  180. u32 flowclen16 = 0;
  181. u32 iso_cpl_len = 0;
  182. if (cxgbit_skcb_flags(skb) & SKCBF_TX_ISO)
  183. iso_cpl_len = sizeof(struct cpl_tx_data_iso);
  184. if (cxgbit_is_ofld_imm(skb))
  185. credits_needed = DIV_ROUND_UP(dlen + iso_cpl_len, 16);
  186. else
  187. credits_needed = DIV_ROUND_UP((8 *
  188. cxgbit_calc_tx_flits_ofld(skb)) +
  189. iso_cpl_len, 16);
  190. if (likely(cxgbit_skcb_flags(skb) & SKCBF_TX_NEED_HDR))
  191. credits_needed += DIV_ROUND_UP(
  192. sizeof(struct fw_ofld_tx_data_wr), 16);
  193. /*
  194. * Assumes the initial credits is large enough to support
  195. * fw_flowc_wr plus largest possible first payload
  196. */
  197. if (!test_and_set_bit(CSK_TX_DATA_SENT, &csk->com.flags)) {
  198. flowclen16 = cxgbit_send_tx_flowc_wr(csk);
  199. csk->wr_cred -= flowclen16;
  200. csk->wr_una_cred += flowclen16;
  201. }
  202. if (csk->wr_cred < credits_needed) {
  203. pr_debug("csk 0x%p, skb %u/%u, wr %d < %u.\n",
  204. csk, skb->len, skb->data_len,
  205. credits_needed, csk->wr_cred);
  206. break;
  207. }
  208. __skb_unlink(skb, &csk->txq);
  209. set_wr_txq(skb, CPL_PRIORITY_DATA, csk->txq_idx);
  210. skb->csum = (__force __wsum)(credits_needed + flowclen16);
  211. csk->wr_cred -= credits_needed;
  212. csk->wr_una_cred += credits_needed;
  213. pr_debug("csk 0x%p, skb %u/%u, wr %d, left %u, unack %u.\n",
  214. csk, skb->len, skb->data_len, credits_needed,
  215. csk->wr_cred, csk->wr_una_cred);
  216. if (likely(cxgbit_skcb_flags(skb) & SKCBF_TX_NEED_HDR)) {
  217. len += cxgbit_skcb_tx_extralen(skb);
  218. if ((csk->wr_una_cred >= (csk->wr_max_cred / 2)) ||
  219. (!before(csk->write_seq,
  220. csk->snd_una + csk->snd_win))) {
  221. compl = 1;
  222. csk->wr_una_cred = 0;
  223. }
  224. cxgbit_tx_data_wr(csk, skb, dlen, len, credits_needed,
  225. compl);
  226. csk->snd_nxt += len;
  227. } else if ((cxgbit_skcb_flags(skb) & SKCBF_TX_FLAG_COMPL) ||
  228. (csk->wr_una_cred >= (csk->wr_max_cred / 2))) {
  229. struct cpl_close_con_req *req =
  230. (struct cpl_close_con_req *)skb->data;
  231. req->wr.wr_hi |= htonl(FW_WR_COMPL_F);
  232. csk->wr_una_cred = 0;
  233. }
  234. cxgbit_sock_enqueue_wr(csk, skb);
  235. t4_set_arp_err_handler(skb, csk,
  236. cxgbit_arp_failure_skb_discard);
  237. pr_debug("csk 0x%p,%u, skb 0x%p, %u.\n",
  238. csk, csk->tid, skb, len);
  239. cxgbit_l2t_send(csk->com.cdev, skb, csk->l2t);
  240. }
  241. }
  242. static bool cxgbit_lock_sock(struct cxgbit_sock *csk)
  243. {
  244. spin_lock_bh(&csk->lock);
  245. if (before(csk->write_seq, csk->snd_una + csk->snd_win))
  246. csk->lock_owner = true;
  247. spin_unlock_bh(&csk->lock);
  248. return csk->lock_owner;
  249. }
  250. static void cxgbit_unlock_sock(struct cxgbit_sock *csk)
  251. {
  252. struct sk_buff_head backlogq;
  253. struct sk_buff *skb;
  254. void (*fn)(struct cxgbit_sock *, struct sk_buff *);
  255. skb_queue_head_init(&backlogq);
  256. spin_lock_bh(&csk->lock);
  257. while (skb_queue_len(&csk->backlogq)) {
  258. skb_queue_splice_init(&csk->backlogq, &backlogq);
  259. spin_unlock_bh(&csk->lock);
  260. while ((skb = __skb_dequeue(&backlogq))) {
  261. fn = cxgbit_skcb_rx_backlog_fn(skb);
  262. fn(csk, skb);
  263. }
  264. spin_lock_bh(&csk->lock);
  265. }
  266. csk->lock_owner = false;
  267. spin_unlock_bh(&csk->lock);
  268. }
  269. static int cxgbit_queue_skb(struct cxgbit_sock *csk, struct sk_buff *skb)
  270. {
  271. int ret = 0;
  272. wait_event_interruptible(csk->ack_waitq, cxgbit_lock_sock(csk));
  273. if (unlikely((csk->com.state != CSK_STATE_ESTABLISHED) ||
  274. signal_pending(current))) {
  275. __kfree_skb(skb);
  276. __skb_queue_purge(&csk->ppodq);
  277. ret = -1;
  278. spin_lock_bh(&csk->lock);
  279. if (csk->lock_owner) {
  280. spin_unlock_bh(&csk->lock);
  281. goto unlock;
  282. }
  283. spin_unlock_bh(&csk->lock);
  284. return ret;
  285. }
  286. csk->write_seq += skb->len +
  287. cxgbit_skcb_tx_extralen(skb);
  288. skb_queue_splice_tail_init(&csk->ppodq, &csk->txq);
  289. __skb_queue_tail(&csk->txq, skb);
  290. cxgbit_push_tx_frames(csk);
  291. unlock:
  292. cxgbit_unlock_sock(csk);
  293. return ret;
  294. }
  295. static int
  296. cxgbit_map_skb(struct iscsi_cmd *cmd, struct sk_buff *skb, u32 data_offset,
  297. u32 data_length)
  298. {
  299. u32 i = 0, nr_frags = MAX_SKB_FRAGS;
  300. u32 padding = ((-data_length) & 3);
  301. struct scatterlist *sg;
  302. struct page *page;
  303. unsigned int page_off;
  304. if (padding)
  305. nr_frags--;
  306. /*
  307. * We know each entry in t_data_sg contains a page.
  308. */
  309. sg = &cmd->se_cmd.t_data_sg[data_offset / PAGE_SIZE];
  310. page_off = (data_offset % PAGE_SIZE);
  311. while (data_length && (i < nr_frags)) {
  312. u32 cur_len = min_t(u32, data_length, sg->length - page_off);
  313. page = sg_page(sg);
  314. get_page(page);
  315. skb_fill_page_desc(skb, i, page, sg->offset + page_off,
  316. cur_len);
  317. skb->data_len += cur_len;
  318. skb->len += cur_len;
  319. skb->truesize += cur_len;
  320. data_length -= cur_len;
  321. page_off = 0;
  322. sg = sg_next(sg);
  323. i++;
  324. }
  325. if (data_length)
  326. return -1;
  327. if (padding) {
  328. page = alloc_page(GFP_KERNEL | __GFP_ZERO);
  329. if (!page)
  330. return -1;
  331. skb_fill_page_desc(skb, i, page, 0, padding);
  332. skb->data_len += padding;
  333. skb->len += padding;
  334. skb->truesize += padding;
  335. }
  336. return 0;
  337. }
  338. static int
  339. cxgbit_tx_datain_iso(struct cxgbit_sock *csk, struct iscsi_cmd *cmd,
  340. struct iscsi_datain_req *dr)
  341. {
  342. struct iscsi_conn *conn = csk->conn;
  343. struct sk_buff *skb;
  344. struct iscsi_datain datain;
  345. struct cxgbit_iso_info iso_info;
  346. u32 data_length = cmd->se_cmd.data_length;
  347. u32 mrdsl = conn->conn_ops->MaxRecvDataSegmentLength;
  348. u32 num_pdu, plen, tx_data = 0;
  349. bool task_sense = !!(cmd->se_cmd.se_cmd_flags &
  350. SCF_TRANSPORT_TASK_SENSE);
  351. bool set_statsn = false;
  352. int ret = -1;
  353. while (data_length) {
  354. num_pdu = (data_length + mrdsl - 1) / mrdsl;
  355. if (num_pdu > csk->max_iso_npdu)
  356. num_pdu = csk->max_iso_npdu;
  357. plen = num_pdu * mrdsl;
  358. if (plen > data_length)
  359. plen = data_length;
  360. skb = __cxgbit_alloc_skb(csk, 0, true);
  361. if (unlikely(!skb))
  362. return -ENOMEM;
  363. memset(skb->data, 0, ISCSI_HDR_LEN);
  364. cxgbit_skcb_flags(skb) |= SKCBF_TX_ISO;
  365. cxgbit_skcb_submode(skb) |= (csk->submode &
  366. CXGBIT_SUBMODE_DCRC);
  367. cxgbit_skcb_tx_extralen(skb) = (num_pdu *
  368. cxgbit_digest_len[cxgbit_skcb_submode(skb)]) +
  369. ((num_pdu - 1) * ISCSI_HDR_LEN);
  370. memset(&datain, 0, sizeof(struct iscsi_datain));
  371. memset(&iso_info, 0, sizeof(iso_info));
  372. if (!tx_data)
  373. iso_info.flags |= CXGBIT_ISO_FSLICE;
  374. if (!(data_length - plen)) {
  375. iso_info.flags |= CXGBIT_ISO_LSLICE;
  376. if (!task_sense) {
  377. datain.flags = ISCSI_FLAG_DATA_STATUS;
  378. iscsit_increment_maxcmdsn(cmd, conn->sess);
  379. cmd->stat_sn = conn->stat_sn++;
  380. set_statsn = true;
  381. }
  382. }
  383. iso_info.burst_len = num_pdu * mrdsl;
  384. iso_info.mpdu = mrdsl;
  385. iso_info.len = ISCSI_HDR_LEN + plen;
  386. cxgbit_cpl_tx_data_iso(skb, &iso_info);
  387. datain.offset = tx_data;
  388. datain.data_sn = cmd->data_sn - 1;
  389. iscsit_build_datain_pdu(cmd, conn, &datain,
  390. (struct iscsi_data_rsp *)skb->data,
  391. set_statsn);
  392. ret = cxgbit_map_skb(cmd, skb, tx_data, plen);
  393. if (unlikely(ret)) {
  394. __kfree_skb(skb);
  395. goto out;
  396. }
  397. ret = cxgbit_queue_skb(csk, skb);
  398. if (unlikely(ret))
  399. goto out;
  400. tx_data += plen;
  401. data_length -= plen;
  402. cmd->read_data_done += plen;
  403. cmd->data_sn += num_pdu;
  404. }
  405. dr->dr_complete = DATAIN_COMPLETE_NORMAL;
  406. return 0;
  407. out:
  408. return ret;
  409. }
  410. static int
  411. cxgbit_tx_datain(struct cxgbit_sock *csk, struct iscsi_cmd *cmd,
  412. const struct iscsi_datain *datain)
  413. {
  414. struct sk_buff *skb;
  415. int ret = 0;
  416. skb = cxgbit_alloc_skb(csk, 0);
  417. if (unlikely(!skb))
  418. return -ENOMEM;
  419. memcpy(skb->data, cmd->pdu, ISCSI_HDR_LEN);
  420. if (datain->length) {
  421. cxgbit_skcb_submode(skb) |= (csk->submode &
  422. CXGBIT_SUBMODE_DCRC);
  423. cxgbit_skcb_tx_extralen(skb) =
  424. cxgbit_digest_len[cxgbit_skcb_submode(skb)];
  425. }
  426. ret = cxgbit_map_skb(cmd, skb, datain->offset, datain->length);
  427. if (ret < 0) {
  428. __kfree_skb(skb);
  429. return ret;
  430. }
  431. return cxgbit_queue_skb(csk, skb);
  432. }
  433. static int
  434. cxgbit_xmit_datain_pdu(struct iscsi_conn *conn, struct iscsi_cmd *cmd,
  435. struct iscsi_datain_req *dr,
  436. const struct iscsi_datain *datain)
  437. {
  438. struct cxgbit_sock *csk = conn->context;
  439. u32 data_length = cmd->se_cmd.data_length;
  440. u32 padding = ((-data_length) & 3);
  441. u32 mrdsl = conn->conn_ops->MaxRecvDataSegmentLength;
  442. if ((data_length > mrdsl) && (!dr->recovery) &&
  443. (!padding) && (!datain->offset) && csk->max_iso_npdu) {
  444. atomic_long_add(data_length - datain->length,
  445. &conn->sess->tx_data_octets);
  446. return cxgbit_tx_datain_iso(csk, cmd, dr);
  447. }
  448. return cxgbit_tx_datain(csk, cmd, datain);
  449. }
  450. static int
  451. cxgbit_xmit_nondatain_pdu(struct iscsi_conn *conn, struct iscsi_cmd *cmd,
  452. const void *data_buf, u32 data_buf_len)
  453. {
  454. struct cxgbit_sock *csk = conn->context;
  455. struct sk_buff *skb;
  456. u32 padding = ((-data_buf_len) & 3);
  457. skb = cxgbit_alloc_skb(csk, data_buf_len + padding);
  458. if (unlikely(!skb))
  459. return -ENOMEM;
  460. memcpy(skb->data, cmd->pdu, ISCSI_HDR_LEN);
  461. if (data_buf_len) {
  462. u32 pad_bytes = 0;
  463. skb_store_bits(skb, ISCSI_HDR_LEN, data_buf, data_buf_len);
  464. if (padding)
  465. skb_store_bits(skb, ISCSI_HDR_LEN + data_buf_len,
  466. &pad_bytes, padding);
  467. }
  468. cxgbit_skcb_tx_extralen(skb) = cxgbit_digest_len[
  469. cxgbit_skcb_submode(skb)];
  470. return cxgbit_queue_skb(csk, skb);
  471. }
  472. int
  473. cxgbit_xmit_pdu(struct iscsi_conn *conn, struct iscsi_cmd *cmd,
  474. struct iscsi_datain_req *dr, const void *buf, u32 buf_len)
  475. {
  476. if (dr)
  477. return cxgbit_xmit_datain_pdu(conn, cmd, dr, buf);
  478. else
  479. return cxgbit_xmit_nondatain_pdu(conn, cmd, buf, buf_len);
  480. }
  481. int cxgbit_validate_params(struct iscsi_conn *conn)
  482. {
  483. struct cxgbit_sock *csk = conn->context;
  484. struct cxgbit_device *cdev = csk->com.cdev;
  485. struct iscsi_param *param;
  486. u32 max_xmitdsl;
  487. param = iscsi_find_param_from_key(MAXXMITDATASEGMENTLENGTH,
  488. conn->param_list);
  489. if (!param)
  490. return -1;
  491. if (kstrtou32(param->value, 0, &max_xmitdsl) < 0)
  492. return -1;
  493. if (max_xmitdsl > cdev->mdsl) {
  494. if (iscsi_change_param_sprintf(
  495. conn, "MaxXmitDataSegmentLength=%u", cdev->mdsl))
  496. return -1;
  497. }
  498. return 0;
  499. }
  500. static int cxgbit_set_digest(struct cxgbit_sock *csk)
  501. {
  502. struct iscsi_conn *conn = csk->conn;
  503. struct iscsi_param *param;
  504. param = iscsi_find_param_from_key(HEADERDIGEST, conn->param_list);
  505. if (!param) {
  506. pr_err("param not found key %s\n", HEADERDIGEST);
  507. return -1;
  508. }
  509. if (!strcmp(param->value, CRC32C))
  510. csk->submode |= CXGBIT_SUBMODE_HCRC;
  511. param = iscsi_find_param_from_key(DATADIGEST, conn->param_list);
  512. if (!param) {
  513. csk->submode = 0;
  514. pr_err("param not found key %s\n", DATADIGEST);
  515. return -1;
  516. }
  517. if (!strcmp(param->value, CRC32C))
  518. csk->submode |= CXGBIT_SUBMODE_DCRC;
  519. if (cxgbit_setup_conn_digest(csk)) {
  520. csk->submode = 0;
  521. return -1;
  522. }
  523. return 0;
  524. }
  525. static int cxgbit_set_iso_npdu(struct cxgbit_sock *csk)
  526. {
  527. struct iscsi_conn *conn = csk->conn;
  528. struct iscsi_conn_ops *conn_ops = conn->conn_ops;
  529. struct iscsi_param *param;
  530. u32 mrdsl, mbl;
  531. u32 max_npdu, max_iso_npdu;
  532. u32 max_iso_payload;
  533. if (conn->login->leading_connection) {
  534. param = iscsi_find_param_from_key(MAXBURSTLENGTH,
  535. conn->param_list);
  536. if (!param) {
  537. pr_err("param not found key %s\n", MAXBURSTLENGTH);
  538. return -1;
  539. }
  540. if (kstrtou32(param->value, 0, &mbl) < 0)
  541. return -1;
  542. } else {
  543. mbl = conn->sess->sess_ops->MaxBurstLength;
  544. }
  545. mrdsl = conn_ops->MaxRecvDataSegmentLength;
  546. max_npdu = mbl / mrdsl;
  547. max_iso_payload = rounddown(CXGBIT_MAX_ISO_PAYLOAD, csk->emss);
  548. max_iso_npdu = max_iso_payload /
  549. (ISCSI_HDR_LEN + mrdsl +
  550. cxgbit_digest_len[csk->submode]);
  551. csk->max_iso_npdu = min(max_npdu, max_iso_npdu);
  552. if (csk->max_iso_npdu <= 1)
  553. csk->max_iso_npdu = 0;
  554. return 0;
  555. }
  556. /*
  557. * cxgbit_seq_pdu_inorder()
  558. * @csk: pointer to cxgbit socket structure
  559. *
  560. * This function checks whether data sequence and data
  561. * pdu are in order.
  562. *
  563. * Return: returns -1 on error, 0 if data sequence and
  564. * data pdu are in order, 1 if data sequence or data pdu
  565. * is not in order.
  566. */
  567. static int cxgbit_seq_pdu_inorder(struct cxgbit_sock *csk)
  568. {
  569. struct iscsi_conn *conn = csk->conn;
  570. struct iscsi_param *param;
  571. if (conn->login->leading_connection) {
  572. param = iscsi_find_param_from_key(DATASEQUENCEINORDER,
  573. conn->param_list);
  574. if (!param) {
  575. pr_err("param not found key %s\n", DATASEQUENCEINORDER);
  576. return -1;
  577. }
  578. if (strcmp(param->value, YES))
  579. return 1;
  580. param = iscsi_find_param_from_key(DATAPDUINORDER,
  581. conn->param_list);
  582. if (!param) {
  583. pr_err("param not found key %s\n", DATAPDUINORDER);
  584. return -1;
  585. }
  586. if (strcmp(param->value, YES))
  587. return 1;
  588. } else {
  589. if (!conn->sess->sess_ops->DataSequenceInOrder)
  590. return 1;
  591. if (!conn->sess->sess_ops->DataPDUInOrder)
  592. return 1;
  593. }
  594. return 0;
  595. }
  596. static int cxgbit_set_params(struct iscsi_conn *conn)
  597. {
  598. struct cxgbit_sock *csk = conn->context;
  599. struct cxgbit_device *cdev = csk->com.cdev;
  600. struct cxgbi_ppm *ppm = *csk->com.cdev->lldi.iscsi_ppm;
  601. struct iscsi_conn_ops *conn_ops = conn->conn_ops;
  602. struct iscsi_param *param;
  603. u8 erl;
  604. if (conn_ops->MaxRecvDataSegmentLength > cdev->mdsl)
  605. conn_ops->MaxRecvDataSegmentLength = cdev->mdsl;
  606. if (cxgbit_set_digest(csk))
  607. return -1;
  608. if (conn->login->leading_connection) {
  609. param = iscsi_find_param_from_key(ERRORRECOVERYLEVEL,
  610. conn->param_list);
  611. if (!param) {
  612. pr_err("param not found key %s\n", ERRORRECOVERYLEVEL);
  613. return -1;
  614. }
  615. if (kstrtou8(param->value, 0, &erl) < 0)
  616. return -1;
  617. } else {
  618. erl = conn->sess->sess_ops->ErrorRecoveryLevel;
  619. }
  620. if (!erl) {
  621. int ret;
  622. ret = cxgbit_seq_pdu_inorder(csk);
  623. if (ret < 0) {
  624. return -1;
  625. } else if (ret > 0) {
  626. if (is_t5(cdev->lldi.adapter_type))
  627. goto enable_ddp;
  628. else
  629. return 0;
  630. }
  631. if (test_bit(CDEV_ISO_ENABLE, &cdev->flags)) {
  632. if (cxgbit_set_iso_npdu(csk))
  633. return -1;
  634. }
  635. enable_ddp:
  636. if (test_bit(CDEV_DDP_ENABLE, &cdev->flags)) {
  637. if (cxgbit_setup_conn_pgidx(csk,
  638. ppm->tformat.pgsz_idx_dflt))
  639. return -1;
  640. set_bit(CSK_DDP_ENABLE, &csk->com.flags);
  641. }
  642. }
  643. return 0;
  644. }
  645. int
  646. cxgbit_put_login_tx(struct iscsi_conn *conn, struct iscsi_login *login,
  647. u32 length)
  648. {
  649. struct cxgbit_sock *csk = conn->context;
  650. struct sk_buff *skb;
  651. u32 padding_buf = 0;
  652. u8 padding = ((-length) & 3);
  653. skb = cxgbit_alloc_skb(csk, length + padding);
  654. if (!skb)
  655. return -ENOMEM;
  656. skb_store_bits(skb, 0, login->rsp, ISCSI_HDR_LEN);
  657. skb_store_bits(skb, ISCSI_HDR_LEN, login->rsp_buf, length);
  658. if (padding)
  659. skb_store_bits(skb, ISCSI_HDR_LEN + length,
  660. &padding_buf, padding);
  661. if (login->login_complete) {
  662. if (cxgbit_set_params(conn)) {
  663. kfree_skb(skb);
  664. return -1;
  665. }
  666. set_bit(CSK_LOGIN_DONE, &csk->com.flags);
  667. }
  668. if (cxgbit_queue_skb(csk, skb))
  669. return -1;
  670. if ((!login->login_complete) && (!login->login_failed))
  671. schedule_delayed_work(&conn->login_work, 0);
  672. return 0;
  673. }
  674. static void
  675. cxgbit_skb_copy_to_sg(struct sk_buff *skb, struct scatterlist *sg,
  676. unsigned int nents, u32 skip)
  677. {
  678. struct skb_seq_state st;
  679. const u8 *buf;
  680. unsigned int consumed = 0, buf_len;
  681. struct cxgbit_lro_pdu_cb *pdu_cb = cxgbit_rx_pdu_cb(skb);
  682. skb_prepare_seq_read(skb, pdu_cb->doffset,
  683. pdu_cb->doffset + pdu_cb->dlen,
  684. &st);
  685. while (true) {
  686. buf_len = skb_seq_read(consumed, &buf, &st);
  687. if (!buf_len) {
  688. skb_abort_seq_read(&st);
  689. break;
  690. }
  691. consumed += sg_pcopy_from_buffer(sg, nents, (void *)buf,
  692. buf_len, skip + consumed);
  693. }
  694. }
  695. static struct iscsi_cmd *cxgbit_allocate_cmd(struct cxgbit_sock *csk)
  696. {
  697. struct iscsi_conn *conn = csk->conn;
  698. struct cxgbi_ppm *ppm = cdev2ppm(csk->com.cdev);
  699. struct cxgbit_cmd *ccmd;
  700. struct iscsi_cmd *cmd;
  701. cmd = iscsit_allocate_cmd(conn, TASK_INTERRUPTIBLE);
  702. if (!cmd) {
  703. pr_err("Unable to allocate iscsi_cmd + cxgbit_cmd\n");
  704. return NULL;
  705. }
  706. ccmd = iscsit_priv_cmd(cmd);
  707. ccmd->ttinfo.tag = ppm->tformat.no_ddp_mask;
  708. ccmd->setup_ddp = true;
  709. return cmd;
  710. }
  711. static int
  712. cxgbit_handle_immediate_data(struct iscsi_cmd *cmd, struct iscsi_scsi_req *hdr,
  713. u32 length)
  714. {
  715. struct iscsi_conn *conn = cmd->conn;
  716. struct cxgbit_sock *csk = conn->context;
  717. struct cxgbit_lro_pdu_cb *pdu_cb = cxgbit_rx_pdu_cb(csk->skb);
  718. if (pdu_cb->flags & PDUCBF_RX_DCRC_ERR) {
  719. pr_err("ImmediateData CRC32C DataDigest error\n");
  720. if (!conn->sess->sess_ops->ErrorRecoveryLevel) {
  721. pr_err("Unable to recover from"
  722. " Immediate Data digest failure while"
  723. " in ERL=0.\n");
  724. iscsit_reject_cmd(cmd, ISCSI_REASON_DATA_DIGEST_ERROR,
  725. (unsigned char *)hdr);
  726. return IMMEDIATE_DATA_CANNOT_RECOVER;
  727. }
  728. iscsit_reject_cmd(cmd, ISCSI_REASON_DATA_DIGEST_ERROR,
  729. (unsigned char *)hdr);
  730. return IMMEDIATE_DATA_ERL1_CRC_FAILURE;
  731. }
  732. if (cmd->se_cmd.se_cmd_flags & SCF_PASSTHROUGH_SG_TO_MEM_NOALLOC) {
  733. struct cxgbit_cmd *ccmd = iscsit_priv_cmd(cmd);
  734. struct skb_shared_info *ssi = skb_shinfo(csk->skb);
  735. skb_frag_t *dfrag = &ssi->frags[pdu_cb->dfrag_idx];
  736. sg_init_table(&ccmd->sg, 1);
  737. sg_set_page(&ccmd->sg, dfrag->page.p, skb_frag_size(dfrag),
  738. dfrag->page_offset);
  739. get_page(dfrag->page.p);
  740. cmd->se_cmd.t_data_sg = &ccmd->sg;
  741. cmd->se_cmd.t_data_nents = 1;
  742. ccmd->release = true;
  743. } else {
  744. struct scatterlist *sg = &cmd->se_cmd.t_data_sg[0];
  745. u32 sg_nents = max(1UL, DIV_ROUND_UP(pdu_cb->dlen, PAGE_SIZE));
  746. cxgbit_skb_copy_to_sg(csk->skb, sg, sg_nents, 0);
  747. }
  748. cmd->write_data_done += pdu_cb->dlen;
  749. if (cmd->write_data_done == cmd->se_cmd.data_length) {
  750. spin_lock_bh(&cmd->istate_lock);
  751. cmd->cmd_flags |= ICF_GOT_LAST_DATAOUT;
  752. cmd->i_state = ISTATE_RECEIVED_LAST_DATAOUT;
  753. spin_unlock_bh(&cmd->istate_lock);
  754. }
  755. return IMMEDIATE_DATA_NORMAL_OPERATION;
  756. }
  757. static int
  758. cxgbit_get_immediate_data(struct iscsi_cmd *cmd, struct iscsi_scsi_req *hdr,
  759. bool dump_payload)
  760. {
  761. struct iscsi_conn *conn = cmd->conn;
  762. int cmdsn_ret = 0, immed_ret = IMMEDIATE_DATA_NORMAL_OPERATION;
  763. /*
  764. * Special case for Unsupported SAM WRITE Opcodes and ImmediateData=Yes.
  765. */
  766. if (dump_payload)
  767. goto after_immediate_data;
  768. immed_ret = cxgbit_handle_immediate_data(cmd, hdr,
  769. cmd->first_burst_len);
  770. after_immediate_data:
  771. if (immed_ret == IMMEDIATE_DATA_NORMAL_OPERATION) {
  772. /*
  773. * A PDU/CmdSN carrying Immediate Data passed
  774. * DataCRC, check against ExpCmdSN/MaxCmdSN if
  775. * Immediate Bit is not set.
  776. */
  777. cmdsn_ret = iscsit_sequence_cmd(conn, cmd,
  778. (unsigned char *)hdr,
  779. hdr->cmdsn);
  780. if (cmdsn_ret == CMDSN_ERROR_CANNOT_RECOVER)
  781. return -1;
  782. if (cmd->sense_reason || cmdsn_ret == CMDSN_LOWER_THAN_EXP) {
  783. target_put_sess_cmd(&cmd->se_cmd);
  784. return 0;
  785. } else if (cmd->unsolicited_data) {
  786. iscsit_set_unsoliticed_dataout(cmd);
  787. }
  788. } else if (immed_ret == IMMEDIATE_DATA_ERL1_CRC_FAILURE) {
  789. /*
  790. * Immediate Data failed DataCRC and ERL>=1,
  791. * silently drop this PDU and let the initiator
  792. * plug the CmdSN gap.
  793. *
  794. * FIXME: Send Unsolicited NOPIN with reserved
  795. * TTT here to help the initiator figure out
  796. * the missing CmdSN, although they should be
  797. * intelligent enough to determine the missing
  798. * CmdSN and issue a retry to plug the sequence.
  799. */
  800. cmd->i_state = ISTATE_REMOVE;
  801. iscsit_add_cmd_to_immediate_queue(cmd, conn, cmd->i_state);
  802. } else /* immed_ret == IMMEDIATE_DATA_CANNOT_RECOVER */
  803. return -1;
  804. return 0;
  805. }
  806. static int
  807. cxgbit_handle_scsi_cmd(struct cxgbit_sock *csk, struct iscsi_cmd *cmd)
  808. {
  809. struct iscsi_conn *conn = csk->conn;
  810. struct cxgbit_lro_pdu_cb *pdu_cb = cxgbit_rx_pdu_cb(csk->skb);
  811. struct iscsi_scsi_req *hdr = (struct iscsi_scsi_req *)pdu_cb->hdr;
  812. int rc;
  813. bool dump_payload = false;
  814. rc = iscsit_setup_scsi_cmd(conn, cmd, (unsigned char *)hdr);
  815. if (rc < 0)
  816. return rc;
  817. if (pdu_cb->dlen && (pdu_cb->dlen == cmd->se_cmd.data_length) &&
  818. (pdu_cb->nr_dfrags == 1))
  819. cmd->se_cmd.se_cmd_flags |= SCF_PASSTHROUGH_SG_TO_MEM_NOALLOC;
  820. rc = iscsit_process_scsi_cmd(conn, cmd, hdr);
  821. if (rc < 0)
  822. return 0;
  823. else if (rc > 0)
  824. dump_payload = true;
  825. if (!pdu_cb->dlen)
  826. return 0;
  827. return cxgbit_get_immediate_data(cmd, hdr, dump_payload);
  828. }
  829. static int cxgbit_handle_iscsi_dataout(struct cxgbit_sock *csk)
  830. {
  831. struct scatterlist *sg_start;
  832. struct iscsi_conn *conn = csk->conn;
  833. struct iscsi_cmd *cmd = NULL;
  834. struct cxgbit_lro_pdu_cb *pdu_cb = cxgbit_rx_pdu_cb(csk->skb);
  835. struct iscsi_data *hdr = (struct iscsi_data *)pdu_cb->hdr;
  836. u32 data_offset = be32_to_cpu(hdr->offset);
  837. u32 data_len = pdu_cb->dlen;
  838. int rc, sg_nents, sg_off;
  839. bool dcrc_err = false;
  840. if (pdu_cb->flags & PDUCBF_RX_DDP_CMP) {
  841. u32 offset = be32_to_cpu(hdr->offset);
  842. u32 ddp_data_len;
  843. u32 payload_length = ntoh24(hdr->dlength);
  844. bool success = false;
  845. cmd = iscsit_find_cmd_from_itt_or_dump(conn, hdr->itt, 0);
  846. if (!cmd)
  847. return 0;
  848. ddp_data_len = offset - cmd->write_data_done;
  849. atomic_long_add(ddp_data_len, &conn->sess->rx_data_octets);
  850. cmd->write_data_done = offset;
  851. cmd->next_burst_len = ddp_data_len;
  852. cmd->data_sn = be32_to_cpu(hdr->datasn);
  853. rc = __iscsit_check_dataout_hdr(conn, (unsigned char *)hdr,
  854. cmd, payload_length, &success);
  855. if (rc < 0)
  856. return rc;
  857. else if (!success)
  858. return 0;
  859. } else {
  860. rc = iscsit_check_dataout_hdr(conn, (unsigned char *)hdr, &cmd);
  861. if (rc < 0)
  862. return rc;
  863. else if (!cmd)
  864. return 0;
  865. }
  866. if (pdu_cb->flags & PDUCBF_RX_DCRC_ERR) {
  867. pr_err("ITT: 0x%08x, Offset: %u, Length: %u,"
  868. " DataSN: 0x%08x\n",
  869. hdr->itt, hdr->offset, data_len,
  870. hdr->datasn);
  871. dcrc_err = true;
  872. goto check_payload;
  873. }
  874. pr_debug("DataOut data_len: %u, "
  875. "write_data_done: %u, data_length: %u\n",
  876. data_len, cmd->write_data_done,
  877. cmd->se_cmd.data_length);
  878. if (!(pdu_cb->flags & PDUCBF_RX_DATA_DDPD)) {
  879. u32 skip = data_offset % PAGE_SIZE;
  880. sg_off = data_offset / PAGE_SIZE;
  881. sg_start = &cmd->se_cmd.t_data_sg[sg_off];
  882. sg_nents = max(1UL, DIV_ROUND_UP(skip + data_len, PAGE_SIZE));
  883. cxgbit_skb_copy_to_sg(csk->skb, sg_start, sg_nents, skip);
  884. }
  885. check_payload:
  886. rc = iscsit_check_dataout_payload(cmd, hdr, dcrc_err);
  887. if (rc < 0)
  888. return rc;
  889. return 0;
  890. }
  891. static int cxgbit_handle_nop_out(struct cxgbit_sock *csk, struct iscsi_cmd *cmd)
  892. {
  893. struct iscsi_conn *conn = csk->conn;
  894. struct cxgbit_lro_pdu_cb *pdu_cb = cxgbit_rx_pdu_cb(csk->skb);
  895. struct iscsi_nopout *hdr = (struct iscsi_nopout *)pdu_cb->hdr;
  896. unsigned char *ping_data = NULL;
  897. u32 payload_length = pdu_cb->dlen;
  898. int ret;
  899. ret = iscsit_setup_nop_out(conn, cmd, hdr);
  900. if (ret < 0)
  901. return 0;
  902. if (pdu_cb->flags & PDUCBF_RX_DCRC_ERR) {
  903. if (!conn->sess->sess_ops->ErrorRecoveryLevel) {
  904. pr_err("Unable to recover from"
  905. " NOPOUT Ping DataCRC failure while in"
  906. " ERL=0.\n");
  907. ret = -1;
  908. goto out;
  909. } else {
  910. /*
  911. * drop this PDU and let the
  912. * initiator plug the CmdSN gap.
  913. */
  914. pr_info("Dropping NOPOUT"
  915. " Command CmdSN: 0x%08x due to"
  916. " DataCRC error.\n", hdr->cmdsn);
  917. ret = 0;
  918. goto out;
  919. }
  920. }
  921. /*
  922. * Handle NOP-OUT payload for traditional iSCSI sockets
  923. */
  924. if (payload_length && hdr->ttt == cpu_to_be32(0xFFFFFFFF)) {
  925. ping_data = kzalloc(payload_length + 1, GFP_KERNEL);
  926. if (!ping_data) {
  927. pr_err("Unable to allocate memory for"
  928. " NOPOUT ping data.\n");
  929. ret = -1;
  930. goto out;
  931. }
  932. skb_copy_bits(csk->skb, pdu_cb->doffset,
  933. ping_data, payload_length);
  934. ping_data[payload_length] = '\0';
  935. /*
  936. * Attach ping data to struct iscsi_cmd->buf_ptr.
  937. */
  938. cmd->buf_ptr = ping_data;
  939. cmd->buf_ptr_size = payload_length;
  940. pr_debug("Got %u bytes of NOPOUT ping"
  941. " data.\n", payload_length);
  942. pr_debug("Ping Data: \"%s\"\n", ping_data);
  943. }
  944. return iscsit_process_nop_out(conn, cmd, hdr);
  945. out:
  946. if (cmd)
  947. iscsit_free_cmd(cmd, false);
  948. return ret;
  949. }
  950. static int
  951. cxgbit_handle_text_cmd(struct cxgbit_sock *csk, struct iscsi_cmd *cmd)
  952. {
  953. struct iscsi_conn *conn = csk->conn;
  954. struct cxgbit_lro_pdu_cb *pdu_cb = cxgbit_rx_pdu_cb(csk->skb);
  955. struct iscsi_text *hdr = (struct iscsi_text *)pdu_cb->hdr;
  956. u32 payload_length = pdu_cb->dlen;
  957. int rc;
  958. unsigned char *text_in = NULL;
  959. rc = iscsit_setup_text_cmd(conn, cmd, hdr);
  960. if (rc < 0)
  961. return rc;
  962. if (pdu_cb->flags & PDUCBF_RX_DCRC_ERR) {
  963. if (!conn->sess->sess_ops->ErrorRecoveryLevel) {
  964. pr_err("Unable to recover from"
  965. " Text Data digest failure while in"
  966. " ERL=0.\n");
  967. goto reject;
  968. } else {
  969. /*
  970. * drop this PDU and let the
  971. * initiator plug the CmdSN gap.
  972. */
  973. pr_info("Dropping Text"
  974. " Command CmdSN: 0x%08x due to"
  975. " DataCRC error.\n", hdr->cmdsn);
  976. return 0;
  977. }
  978. }
  979. if (payload_length) {
  980. text_in = kzalloc(payload_length, GFP_KERNEL);
  981. if (!text_in) {
  982. pr_err("Unable to allocate text_in of payload_length: %u\n",
  983. payload_length);
  984. return -ENOMEM;
  985. }
  986. skb_copy_bits(csk->skb, pdu_cb->doffset,
  987. text_in, payload_length);
  988. text_in[payload_length - 1] = '\0';
  989. cmd->text_in_ptr = text_in;
  990. }
  991. return iscsit_process_text_cmd(conn, cmd, hdr);
  992. reject:
  993. return iscsit_reject_cmd(cmd, ISCSI_REASON_PROTOCOL_ERROR,
  994. pdu_cb->hdr);
  995. }
  996. static int cxgbit_target_rx_opcode(struct cxgbit_sock *csk)
  997. {
  998. struct cxgbit_lro_pdu_cb *pdu_cb = cxgbit_rx_pdu_cb(csk->skb);
  999. struct iscsi_hdr *hdr = (struct iscsi_hdr *)pdu_cb->hdr;
  1000. struct iscsi_conn *conn = csk->conn;
  1001. struct iscsi_cmd *cmd = NULL;
  1002. u8 opcode = (hdr->opcode & ISCSI_OPCODE_MASK);
  1003. int ret = -EINVAL;
  1004. switch (opcode) {
  1005. case ISCSI_OP_SCSI_CMD:
  1006. cmd = cxgbit_allocate_cmd(csk);
  1007. if (!cmd)
  1008. goto reject;
  1009. ret = cxgbit_handle_scsi_cmd(csk, cmd);
  1010. break;
  1011. case ISCSI_OP_SCSI_DATA_OUT:
  1012. ret = cxgbit_handle_iscsi_dataout(csk);
  1013. break;
  1014. case ISCSI_OP_NOOP_OUT:
  1015. if (hdr->ttt == cpu_to_be32(0xFFFFFFFF)) {
  1016. cmd = cxgbit_allocate_cmd(csk);
  1017. if (!cmd)
  1018. goto reject;
  1019. }
  1020. ret = cxgbit_handle_nop_out(csk, cmd);
  1021. break;
  1022. case ISCSI_OP_SCSI_TMFUNC:
  1023. cmd = cxgbit_allocate_cmd(csk);
  1024. if (!cmd)
  1025. goto reject;
  1026. ret = iscsit_handle_task_mgt_cmd(conn, cmd,
  1027. (unsigned char *)hdr);
  1028. break;
  1029. case ISCSI_OP_TEXT:
  1030. if (hdr->ttt != cpu_to_be32(0xFFFFFFFF)) {
  1031. cmd = iscsit_find_cmd_from_itt(conn, hdr->itt);
  1032. if (!cmd)
  1033. goto reject;
  1034. } else {
  1035. cmd = cxgbit_allocate_cmd(csk);
  1036. if (!cmd)
  1037. goto reject;
  1038. }
  1039. ret = cxgbit_handle_text_cmd(csk, cmd);
  1040. break;
  1041. case ISCSI_OP_LOGOUT:
  1042. cmd = cxgbit_allocate_cmd(csk);
  1043. if (!cmd)
  1044. goto reject;
  1045. ret = iscsit_handle_logout_cmd(conn, cmd, (unsigned char *)hdr);
  1046. if (ret > 0)
  1047. wait_for_completion_timeout(&conn->conn_logout_comp,
  1048. SECONDS_FOR_LOGOUT_COMP
  1049. * HZ);
  1050. break;
  1051. case ISCSI_OP_SNACK:
  1052. ret = iscsit_handle_snack(conn, (unsigned char *)hdr);
  1053. break;
  1054. default:
  1055. pr_err("Got unknown iSCSI OpCode: 0x%02x\n", opcode);
  1056. dump_stack();
  1057. break;
  1058. }
  1059. return ret;
  1060. reject:
  1061. return iscsit_add_reject(conn, ISCSI_REASON_BOOKMARK_NO_RESOURCES,
  1062. (unsigned char *)hdr);
  1063. return ret;
  1064. }
  1065. static int cxgbit_rx_opcode(struct cxgbit_sock *csk)
  1066. {
  1067. struct cxgbit_lro_pdu_cb *pdu_cb = cxgbit_rx_pdu_cb(csk->skb);
  1068. struct iscsi_conn *conn = csk->conn;
  1069. struct iscsi_hdr *hdr = pdu_cb->hdr;
  1070. u8 opcode;
  1071. if (pdu_cb->flags & PDUCBF_RX_HCRC_ERR) {
  1072. atomic_long_inc(&conn->sess->conn_digest_errors);
  1073. goto transport_err;
  1074. }
  1075. if (conn->conn_state == TARG_CONN_STATE_IN_LOGOUT)
  1076. goto transport_err;
  1077. opcode = hdr->opcode & ISCSI_OPCODE_MASK;
  1078. if (conn->sess->sess_ops->SessionType &&
  1079. ((!(opcode & ISCSI_OP_TEXT)) ||
  1080. (!(opcode & ISCSI_OP_LOGOUT)))) {
  1081. pr_err("Received illegal iSCSI Opcode: 0x%02x"
  1082. " while in Discovery Session, rejecting.\n", opcode);
  1083. iscsit_add_reject(conn, ISCSI_REASON_PROTOCOL_ERROR,
  1084. (unsigned char *)hdr);
  1085. goto transport_err;
  1086. }
  1087. if (cxgbit_target_rx_opcode(csk) < 0)
  1088. goto transport_err;
  1089. return 0;
  1090. transport_err:
  1091. return -1;
  1092. }
  1093. static int cxgbit_rx_login_pdu(struct cxgbit_sock *csk)
  1094. {
  1095. struct iscsi_conn *conn = csk->conn;
  1096. struct iscsi_login *login = conn->login;
  1097. struct cxgbit_lro_pdu_cb *pdu_cb = cxgbit_rx_pdu_cb(csk->skb);
  1098. struct iscsi_login_req *login_req;
  1099. login_req = (struct iscsi_login_req *)login->req;
  1100. memcpy(login_req, pdu_cb->hdr, sizeof(*login_req));
  1101. pr_debug("Got Login Command, Flags 0x%02x, ITT: 0x%08x,"
  1102. " CmdSN: 0x%08x, ExpStatSN: 0x%08x, CID: %hu, Length: %u\n",
  1103. login_req->flags, login_req->itt, login_req->cmdsn,
  1104. login_req->exp_statsn, login_req->cid, pdu_cb->dlen);
  1105. /*
  1106. * Setup the initial iscsi_login values from the leading
  1107. * login request PDU.
  1108. */
  1109. if (login->first_request) {
  1110. login_req = (struct iscsi_login_req *)login->req;
  1111. login->leading_connection = (!login_req->tsih) ? 1 : 0;
  1112. login->current_stage = ISCSI_LOGIN_CURRENT_STAGE(
  1113. login_req->flags);
  1114. login->version_min = login_req->min_version;
  1115. login->version_max = login_req->max_version;
  1116. memcpy(login->isid, login_req->isid, 6);
  1117. login->cmd_sn = be32_to_cpu(login_req->cmdsn);
  1118. login->init_task_tag = login_req->itt;
  1119. login->initial_exp_statsn = be32_to_cpu(login_req->exp_statsn);
  1120. login->cid = be16_to_cpu(login_req->cid);
  1121. login->tsih = be16_to_cpu(login_req->tsih);
  1122. }
  1123. if (iscsi_target_check_login_request(conn, login) < 0)
  1124. return -1;
  1125. memset(login->req_buf, 0, MAX_KEY_VALUE_PAIRS);
  1126. skb_copy_bits(csk->skb, pdu_cb->doffset, login->req_buf, pdu_cb->dlen);
  1127. return 0;
  1128. }
  1129. static int
  1130. cxgbit_process_iscsi_pdu(struct cxgbit_sock *csk, struct sk_buff *skb, int idx)
  1131. {
  1132. struct cxgbit_lro_pdu_cb *pdu_cb = cxgbit_skb_lro_pdu_cb(skb, idx);
  1133. int ret;
  1134. cxgbit_rx_pdu_cb(skb) = pdu_cb;
  1135. csk->skb = skb;
  1136. if (!test_bit(CSK_LOGIN_DONE, &csk->com.flags)) {
  1137. ret = cxgbit_rx_login_pdu(csk);
  1138. set_bit(CSK_LOGIN_PDU_DONE, &csk->com.flags);
  1139. } else {
  1140. ret = cxgbit_rx_opcode(csk);
  1141. }
  1142. return ret;
  1143. }
  1144. static void cxgbit_lro_skb_dump(struct sk_buff *skb)
  1145. {
  1146. struct skb_shared_info *ssi = skb_shinfo(skb);
  1147. struct cxgbit_lro_cb *lro_cb = cxgbit_skb_lro_cb(skb);
  1148. struct cxgbit_lro_pdu_cb *pdu_cb = cxgbit_skb_lro_pdu_cb(skb, 0);
  1149. u8 i;
  1150. pr_info("skb 0x%p, head 0x%p, 0x%p, len %u,%u, frags %u.\n",
  1151. skb, skb->head, skb->data, skb->len, skb->data_len,
  1152. ssi->nr_frags);
  1153. pr_info("skb 0x%p, lro_cb, csk 0x%p, pdu %u, %u.\n",
  1154. skb, lro_cb->csk, lro_cb->pdu_idx, lro_cb->pdu_totallen);
  1155. for (i = 0; i < lro_cb->pdu_idx; i++, pdu_cb++)
  1156. pr_info("skb 0x%p, pdu %d, %u, f 0x%x, seq 0x%x, dcrc 0x%x, "
  1157. "frags %u.\n",
  1158. skb, i, pdu_cb->pdulen, pdu_cb->flags, pdu_cb->seq,
  1159. pdu_cb->ddigest, pdu_cb->frags);
  1160. for (i = 0; i < ssi->nr_frags; i++)
  1161. pr_info("skb 0x%p, frag %d, off %u, sz %u.\n",
  1162. skb, i, ssi->frags[i].page_offset, ssi->frags[i].size);
  1163. }
  1164. static void cxgbit_lro_hskb_reset(struct cxgbit_sock *csk)
  1165. {
  1166. struct sk_buff *skb = csk->lro_hskb;
  1167. struct skb_shared_info *ssi = skb_shinfo(skb);
  1168. u8 i;
  1169. memset(skb->data, 0, LRO_SKB_MIN_HEADROOM);
  1170. for (i = 0; i < ssi->nr_frags; i++)
  1171. put_page(skb_frag_page(&ssi->frags[i]));
  1172. ssi->nr_frags = 0;
  1173. skb->data_len = 0;
  1174. skb->truesize -= skb->len;
  1175. skb->len = 0;
  1176. }
  1177. static void
  1178. cxgbit_lro_skb_merge(struct cxgbit_sock *csk, struct sk_buff *skb, u8 pdu_idx)
  1179. {
  1180. struct sk_buff *hskb = csk->lro_hskb;
  1181. struct cxgbit_lro_pdu_cb *hpdu_cb = cxgbit_skb_lro_pdu_cb(hskb, 0);
  1182. struct cxgbit_lro_pdu_cb *pdu_cb = cxgbit_skb_lro_pdu_cb(skb, pdu_idx);
  1183. struct skb_shared_info *hssi = skb_shinfo(hskb);
  1184. struct skb_shared_info *ssi = skb_shinfo(skb);
  1185. unsigned int len = 0;
  1186. if (pdu_cb->flags & PDUCBF_RX_HDR) {
  1187. u8 hfrag_idx = hssi->nr_frags;
  1188. hpdu_cb->flags |= pdu_cb->flags;
  1189. hpdu_cb->seq = pdu_cb->seq;
  1190. hpdu_cb->hdr = pdu_cb->hdr;
  1191. hpdu_cb->hlen = pdu_cb->hlen;
  1192. memcpy(&hssi->frags[hfrag_idx], &ssi->frags[pdu_cb->hfrag_idx],
  1193. sizeof(skb_frag_t));
  1194. get_page(skb_frag_page(&hssi->frags[hfrag_idx]));
  1195. hssi->nr_frags++;
  1196. hpdu_cb->frags++;
  1197. hpdu_cb->hfrag_idx = hfrag_idx;
  1198. len = hssi->frags[hfrag_idx].size;
  1199. hskb->len += len;
  1200. hskb->data_len += len;
  1201. hskb->truesize += len;
  1202. }
  1203. if (pdu_cb->flags & PDUCBF_RX_DATA) {
  1204. u8 dfrag_idx = hssi->nr_frags, i;
  1205. hpdu_cb->flags |= pdu_cb->flags;
  1206. hpdu_cb->dfrag_idx = dfrag_idx;
  1207. len = 0;
  1208. for (i = 0; i < pdu_cb->nr_dfrags; dfrag_idx++, i++) {
  1209. memcpy(&hssi->frags[dfrag_idx],
  1210. &ssi->frags[pdu_cb->dfrag_idx + i],
  1211. sizeof(skb_frag_t));
  1212. get_page(skb_frag_page(&hssi->frags[dfrag_idx]));
  1213. len += hssi->frags[dfrag_idx].size;
  1214. hssi->nr_frags++;
  1215. hpdu_cb->frags++;
  1216. }
  1217. hpdu_cb->dlen = pdu_cb->dlen;
  1218. hpdu_cb->doffset = hpdu_cb->hlen;
  1219. hpdu_cb->nr_dfrags = pdu_cb->nr_dfrags;
  1220. hskb->len += len;
  1221. hskb->data_len += len;
  1222. hskb->truesize += len;
  1223. }
  1224. if (pdu_cb->flags & PDUCBF_RX_STATUS) {
  1225. hpdu_cb->flags |= pdu_cb->flags;
  1226. if (hpdu_cb->flags & PDUCBF_RX_DATA)
  1227. hpdu_cb->flags &= ~PDUCBF_RX_DATA_DDPD;
  1228. hpdu_cb->ddigest = pdu_cb->ddigest;
  1229. hpdu_cb->pdulen = pdu_cb->pdulen;
  1230. }
  1231. }
  1232. static int cxgbit_process_lro_skb(struct cxgbit_sock *csk, struct sk_buff *skb)
  1233. {
  1234. struct cxgbit_lro_cb *lro_cb = cxgbit_skb_lro_cb(skb);
  1235. struct cxgbit_lro_pdu_cb *pdu_cb = cxgbit_skb_lro_pdu_cb(skb, 0);
  1236. u8 pdu_idx = 0, last_idx = 0;
  1237. int ret = 0;
  1238. if (!pdu_cb->complete) {
  1239. cxgbit_lro_skb_merge(csk, skb, 0);
  1240. if (pdu_cb->flags & PDUCBF_RX_STATUS) {
  1241. struct sk_buff *hskb = csk->lro_hskb;
  1242. ret = cxgbit_process_iscsi_pdu(csk, hskb, 0);
  1243. cxgbit_lro_hskb_reset(csk);
  1244. if (ret < 0)
  1245. goto out;
  1246. }
  1247. pdu_idx = 1;
  1248. }
  1249. if (lro_cb->pdu_idx)
  1250. last_idx = lro_cb->pdu_idx - 1;
  1251. for (; pdu_idx <= last_idx; pdu_idx++) {
  1252. ret = cxgbit_process_iscsi_pdu(csk, skb, pdu_idx);
  1253. if (ret < 0)
  1254. goto out;
  1255. }
  1256. if ((!lro_cb->complete) && lro_cb->pdu_idx)
  1257. cxgbit_lro_skb_merge(csk, skb, lro_cb->pdu_idx);
  1258. out:
  1259. return ret;
  1260. }
  1261. static int cxgbit_rx_lro_skb(struct cxgbit_sock *csk, struct sk_buff *skb)
  1262. {
  1263. struct cxgbit_lro_cb *lro_cb = cxgbit_skb_lro_cb(skb);
  1264. struct cxgbit_lro_pdu_cb *pdu_cb = cxgbit_skb_lro_pdu_cb(skb, 0);
  1265. int ret = -1;
  1266. if ((pdu_cb->flags & PDUCBF_RX_HDR) &&
  1267. (pdu_cb->seq != csk->rcv_nxt)) {
  1268. pr_info("csk 0x%p, tid 0x%x, seq 0x%x != 0x%x.\n",
  1269. csk, csk->tid, pdu_cb->seq, csk->rcv_nxt);
  1270. cxgbit_lro_skb_dump(skb);
  1271. return ret;
  1272. }
  1273. csk->rcv_nxt += lro_cb->pdu_totallen;
  1274. ret = cxgbit_process_lro_skb(csk, skb);
  1275. csk->rx_credits += lro_cb->pdu_totallen;
  1276. if (csk->rx_credits >= (csk->rcv_win / 4))
  1277. cxgbit_rx_data_ack(csk);
  1278. return ret;
  1279. }
  1280. static int cxgbit_rx_skb(struct cxgbit_sock *csk, struct sk_buff *skb)
  1281. {
  1282. struct cxgb4_lld_info *lldi = &csk->com.cdev->lldi;
  1283. int ret = -1;
  1284. if (likely(cxgbit_skcb_flags(skb) & SKCBF_RX_LRO)) {
  1285. if (is_t5(lldi->adapter_type))
  1286. ret = cxgbit_rx_lro_skb(csk, skb);
  1287. else
  1288. ret = cxgbit_process_lro_skb(csk, skb);
  1289. }
  1290. __kfree_skb(skb);
  1291. return ret;
  1292. }
  1293. static bool cxgbit_rxq_len(struct cxgbit_sock *csk, struct sk_buff_head *rxq)
  1294. {
  1295. spin_lock_bh(&csk->rxq.lock);
  1296. if (skb_queue_len(&csk->rxq)) {
  1297. skb_queue_splice_init(&csk->rxq, rxq);
  1298. spin_unlock_bh(&csk->rxq.lock);
  1299. return true;
  1300. }
  1301. spin_unlock_bh(&csk->rxq.lock);
  1302. return false;
  1303. }
  1304. static int cxgbit_wait_rxq(struct cxgbit_sock *csk)
  1305. {
  1306. struct sk_buff *skb;
  1307. struct sk_buff_head rxq;
  1308. skb_queue_head_init(&rxq);
  1309. wait_event_interruptible(csk->waitq, cxgbit_rxq_len(csk, &rxq));
  1310. if (signal_pending(current))
  1311. goto out;
  1312. while ((skb = __skb_dequeue(&rxq))) {
  1313. if (cxgbit_rx_skb(csk, skb))
  1314. goto out;
  1315. }
  1316. return 0;
  1317. out:
  1318. __skb_queue_purge(&rxq);
  1319. return -1;
  1320. }
  1321. int cxgbit_get_login_rx(struct iscsi_conn *conn, struct iscsi_login *login)
  1322. {
  1323. struct cxgbit_sock *csk = conn->context;
  1324. int ret = -1;
  1325. while (!test_and_clear_bit(CSK_LOGIN_PDU_DONE, &csk->com.flags)) {
  1326. ret = cxgbit_wait_rxq(csk);
  1327. if (ret) {
  1328. clear_bit(CSK_LOGIN_PDU_DONE, &csk->com.flags);
  1329. break;
  1330. }
  1331. }
  1332. return ret;
  1333. }
  1334. void cxgbit_get_rx_pdu(struct iscsi_conn *conn)
  1335. {
  1336. struct cxgbit_sock *csk = conn->context;
  1337. while (!kthread_should_stop()) {
  1338. iscsit_thread_check_cpumask(conn, current, 0);
  1339. if (cxgbit_wait_rxq(csk))
  1340. return;
  1341. }
  1342. }